Department of Mechanical Engineering, University of Maryland, College Park, Maryland 20742, USA.
Nat Commun. 2014 Oct 15;5:5247. doi: 10.1038/ncomms6247.
Acoustic sensors play an important role in many areas, such as homeland security, navigation, communication, health care and industry. However, the fundamental pressure detection limit hinders the performance of current acoustic sensing technologies. Here, through analytical, numerical and experimental studies, we show that anisotropic acoustic metamaterials can be designed to have strong wave compression effect that renders direct amplification of pressure fields in metamaterials. This enables a sensing mechanism that can help overcome the detection limit of conventional acoustic sensing systems. We further demonstrate a metamaterial-enhanced acoustic sensing system that achieves more than 20 dB signal-to-noise enhancement (over an order of magnitude enhancement in detection limit). With this system, weak acoustic pulse signals overwhelmed by the noise are successfully recovered. This work opens up new vistas for the development of metamaterial-based acoustic sensors with improved performance and functionalities that are highly desirable for many applications.
声传感器在许多领域发挥着重要作用,如国土安全、导航、通信、医疗保健和工业等。然而,目前的声传感技术受到基本压力检测极限的限制。在这里,通过分析、数值和实验研究,我们表明各向异性声超材料可以被设计为具有很强的波压缩效应,从而在超材料中直接放大压力场。这使得传感机制能够克服传统声传感系统的检测极限。我们进一步展示了一种超材料增强的声传感系统,该系统实现了超过 20 dB 的信噪比增强(检测极限提高了一个数量级以上)。有了这个系统,我们成功地恢复了被噪声淹没的微弱声脉冲信号。这项工作为基于超材料的声传感器的发展开辟了新的前景,这些传感器具有改进的性能和功能,这是许多应用非常需要的。